JP5136852B2 - Valve timing control device - Google Patents

Valve timing control device Download PDF

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JP5136852B2
JP5136852B2 JP2008232310A JP2008232310A JP5136852B2 JP 5136852 B2 JP5136852 B2 JP 5136852B2 JP 2008232310 A JP2008232310 A JP 2008232310A JP 2008232310 A JP2008232310 A JP 2008232310A JP 5136852 B2 JP5136852 B2 JP 5136852B2
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chamber
rotating member
side rotating
fluid
advance
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JP2010065593A (en
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重光 鈴木
康孝 三浦
昌樹 小林
丈雄 朝日
直人 稲摩
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Aisin Corp
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Aisin Seiki Co Ltd
Aisin Corp
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本発明は、内燃機関のクランクシャフトに対して同期回転する駆動側回転部材と、前記駆動側回転部材に対して同軸上に配置され、前記内燃機関の弁開閉用のカムシャフトに同期回転する従動側回転部材と、前記駆動側回転部材及び前記従動側回転部材の何れか一方に形成された流体圧室と、前記流体圧室を進角室と遅角室とに仕切るよう前記駆動側回転部材及び前記従動側回転部材の何れか他方に設けられた仕切部と、前記従動側回転部材に形成され、前記進角室に流体を供給・排出する進角流路及び前記遅角室に流体を供給・排出する遅角流路と、流体の供給状態に基づいて、前記駆動側回転部材および前記従動側回転部材を係止する係止状態と当該係止を解除した解除状態とに切り替え可能なロック機構とを備えた弁開閉時期制御装置に関する。   The present invention relates to a drive-side rotating member that rotates synchronously with a crankshaft of an internal combustion engine, and a follower that is arranged coaxially with the drive-side rotating member and rotates synchronously with a camshaft for opening and closing the valve of the internal combustion engine. A side rotation member, a fluid pressure chamber formed in one of the drive side rotation member and the driven side rotation member, and the drive side rotation member for partitioning the fluid pressure chamber into an advance chamber and a retard chamber And a partition provided on either one of the driven side rotating members, and an advance channel formed in the driven side rotating member for supplying and discharging fluid to the advance chamber and fluid to the retard chamber Based on the retarded flow path to be supplied / discharged and the supply state of the fluid, it is possible to switch between a locked state in which the driving side rotating member and the driven side rotating member are locked and a released state in which the locking is released. Valve timing control device having a locking mechanism About.

上記弁開閉時期制御装置では、ロック機構を係止状態から解除状態に切り替えるための流体圧装置が設けられている。
この流体圧装置は、従来、解除状態に切り替えるための作動用流体を当該ロック機構に供給する専用の解除用流路と、解除用流路への作動用流体の供給及び排出を制御する専用の制御弁とを備えている(例えば、特許文献1参照。)。
専用の解除用流路は、カムシャフトと従動側回転部材とに亘って設けてあり、解除用流路に連通させる周溝をカムシャフトとその軸受け面との界面に形成し、専用の制御弁を、周溝を介して解除用流路に接続してある。
The valve timing control device is provided with a fluid pressure device for switching the lock mechanism from the locked state to the released state.
Conventionally, this fluid pressure device has a dedicated release channel for supplying a working fluid for switching to a released state to the lock mechanism, and a dedicated flow channel for controlling the supply and discharge of the working fluid to the release channel. And a control valve (see, for example, Patent Document 1).
A dedicated release channel is provided across the camshaft and the driven rotary member, and a circumferential groove that communicates with the release channel is formed at the interface between the camshaft and its bearing surface. Is connected to the release channel via a circumferential groove.

特開平10−220207号公報JP-A-10-220207

このため、解除用流路の長さが長くなって、作動用流体が解除用流路の途中から漏れ易い欠点がある。
また、専用の制御弁や専用の解除用流路を内燃機関の本体(カムシャフト)に設ける必要があり、部品加工が繁雑化し易いと共に、内燃機関が大型化し易い欠点がある。
本発明は上記実情に鑑みてなされたものであって、作動流体が解除用流路の途中から漏れ難い上に、内燃機関の大型化も抑制できる弁開閉時期制御装置を提供することを目的とする。
For this reason, the length of the release channel is long, and there is a drawback that the working fluid is likely to leak from the middle of the release channel.
Further, it is necessary to provide a dedicated control valve and a dedicated release channel in the main body (camshaft) of the internal combustion engine, and there are disadvantages that the machining of components is likely to be complicated and the internal combustion engine is likely to be enlarged.
The present invention has been made in view of the above circumstances, and it is an object of the present invention to provide a valve opening / closing timing control device that can prevent the working fluid from leaking from the middle of the release passage and can also prevent an increase in the size of the internal combustion engine. To do.

本発明の第1特徴構成は、内燃機関のクランクシャフトに対して同期回転する駆動側回転部材と、前記駆動側回転部材に対して同軸上に配置され、前記内燃機関の弁開閉用のカムシャフトに同期回転する従動側回転部材と、前記駆動側回転部材及び前記従動側回転部材の何れか一方に形成された流体圧室と、前記流体圧室を進角室と遅角室とに仕切るよう前記駆動側回転部材及び前記従動側回転部材の何れか他方に設けられた仕切部と、前記従動側回転部材に形成され、前記進角室に流体を供給・排出する進角流路及び前記遅角室に流体を供給・排出する遅角流路と、流体の供給状態に基づいて、前記駆動側回転部材および前記従動側回転部材を係止する係止状態と当該係止を解除した解除状態とに切り替え可能なロック機構とを備え、前記進角室又は前記遅角室に供給される流体を、前記ロック機構を前記解除状態にする流体として当該ロック機構に供給する解除用流路を設けてあり、前記解除用流路が、前記進角流路又は前記進角室に連通された第1供給路と、前記遅角流路又は前記遅角室に連通された第2供給路とを合流して構成してあり、前記第1供給路と前記第2供給路とに夫々一方向弁を設けてあり、前記解除用流路に当該解除用流路を連通・遮断する弁体を設けてある点にある。   A first characteristic configuration of the present invention is a drive-side rotating member that rotates synchronously with a crankshaft of an internal combustion engine, and a camshaft that is coaxially disposed with respect to the drive-side rotating member and that opens and closes the valve of the internal combustion engine A driven-side rotating member that rotates in synchronization with each other, a fluid pressure chamber formed in one of the drive-side rotating member and the driven-side rotating member, and the fluid pressure chamber divided into an advance chamber and a retard chamber A partition provided on the other of the drive-side rotation member and the driven-side rotation member, an advance passage formed in the driven-side rotation member, and supplying and discharging fluid to the advance chamber and the delay A retarded flow path for supplying and discharging fluid to and from the corner chamber, and a locked state for locking the driving side rotating member and the driven side rotating member and a released state for releasing the locking based on the fluid supply state And a lock mechanism that can be switched to There is provided a release channel that supplies the fluid supplied to the corner chamber or the retard chamber to the lock mechanism as a fluid that brings the lock mechanism into the release state, and the release channel is the advance angle. A first supply path that communicates with the flow path or the advance chamber, and a second supply path that communicates with the retard flow path or the retard chamber; And the second supply path are provided with one-way valves, respectively, and a valve body for communicating and blocking the release channel is provided in the release channel.

〔作用及び効果〕
本構成の弁開閉時期制御装置であれば、進角室又は遅角室に供給される流体を、ロック機構を解除状態にする流体として当該ロック機構に供給する解除用流路を設けてある。そのため、従来のような、カムシャフトと従動側回転部材とに亘る専用の解除用流路を内燃機関の本体に設けることなく、進角室又は遅角室に供給される流体を短い解除用流路でロック機構に供給できる。
[Action and effect]
In the valve opening / closing timing control device of this configuration, a release channel is provided that supplies the fluid supplied to the advance chamber or retard chamber to the lock mechanism as fluid that releases the lock mechanism. For this reason, the fluid supplied to the advance chamber or the retard chamber is made short without providing a dedicated release channel extending over the camshaft and the driven side rotation member as in the prior art. Can be supplied to the locking mechanism on the road.

また、解除用流路への作動用流体の供給及び排出を制御する専用の制御弁を設けることなく、例えば内燃機関の始動時などの、内燃機関の運転状態に応じた弁開閉時期を最適な時期となるように制御できる。   Further, without providing a dedicated control valve for controlling the supply and discharge of the working fluid to the release flow path, the valve opening / closing timing according to the operating state of the internal combustion engine, for example, when starting the internal combustion engine is optimal. It can be controlled to be timed.

例えば、内燃機関の始動時の一定時間、つまり、進角室又は遅角室に供給される流体の圧力がロック機構を解除状態に切り替えることができる所定圧力に上昇するまでの一定時間は、ロック機構は解除状態に切り替わらず、係止状態を維持して内燃機関の始動に最適な弁開閉時期を得ることができる。   For example, a certain time at the start of the internal combustion engine, that is, a certain time until the pressure of the fluid supplied to the advance chamber or the retard chamber rises to a predetermined pressure at which the lock mechanism can be switched to the release state is locked. The mechanism does not switch to the released state, but can maintain the locked state and obtain the optimum valve opening / closing timing for starting the internal combustion engine.

始動時の一定時間が過ぎると、つまり、進角室又は遅角室に供給される流体の圧力が所定圧力に上昇すると、ロック機構を解除状態に切り替えることができるようになり、駆動側回転部材と従動側回転部材との相対位相を変更して、弁開閉時期を、内燃機関の運転状態に応じた最適な時期となるように制御できる。
内燃機関の停止時は、進角室又は遅角室に供給される流体の圧力が低下するので、ロック機構を係止状態に切り替えることができる。
従って、作動流体が解除用流路の途中から漏れ難い上に、内燃機関の大型化も抑制できる。
When a certain time at the start is over, that is, when the pressure of the fluid supplied to the advance chamber or retard chamber rises to a predetermined pressure, the lock mechanism can be switched to the release state, and the drive side rotating member The valve opening / closing timing can be controlled to be an optimal timing according to the operating state of the internal combustion engine by changing the relative phase between the motor and the driven side rotating member.
When the internal combustion engine is stopped, the pressure of the fluid supplied to the advance chamber or the retard chamber decreases, so that the lock mechanism can be switched to the locked state.
Therefore, it is difficult for the working fluid to leak from the middle of the release flow path, and an increase in the size of the internal combustion engine can be suppressed.

解除用流路が、第1供給路と第2供給路とを合流して構成してあるので、第1供給路と第2供給路との夫々を、流体をロック機構に直に供給する解除用流路として各別に設けてある場合に比べて、構造の簡略化を図ることができる。   Since the release flow path is formed by joining the first supply path and the second supply path, the first supply path and the second supply path are each released to supply the fluid directly to the lock mechanism. The structure can be simplified as compared with the case where the flow paths are provided separately.

また、第1供給路と第2供給路とに夫々一方向弁を設けてあるので、いずれか一方の供給路から供給される流体が、他方の供給路に流入することによる誤作動を防止することができる。   In addition, since the one-way valve is provided in each of the first supply path and the second supply path, malfunction caused by the fluid supplied from one of the supply paths flowing into the other supply path is prevented. be able to.

さらに、解除用流路に当該解除用流路を連通・遮断する弁体を設けてあるので、内燃機関の始動時などに、進角室又は遅角室に供給される流体の圧力が所定圧力に上昇しても、解除用流路を所望のタイミングで連通させて解除状態に切り替えたり、所望のタイミングで遮断させて係止状態に切り替えたりすることができる。   Further, since the release passage is provided with a valve body that communicates and shuts off the release passage, the pressure of the fluid supplied to the advance chamber or the retard chamber when the internal combustion engine is started is a predetermined pressure. Even if it rises, the release channel can be communicated at a desired timing to be switched to a released state, or can be blocked at a desired timing to be switched to a locked state.

本発明の第2特徴構成は、前記弁体に作用する操作部材を備えた弁体制御機構を前記内燃機関の静止部材に設けてある点にある。   A second characteristic configuration of the present invention is that a valve body control mechanism including an operation member acting on the valve body is provided on a stationary member of the internal combustion engine.

〔作用及び効果〕
本構成であれば、弁体制御機構の作動により、所望のタイミングで精度良く解除状態や係止状態に切り替えることができる。
また、弁体制御機構を内燃機関の静止部材に設けてあるので、弁体制御機構の作動を安定させることができる。
[Action and effect]
If it is this structure, it can switch to a cancellation | release state and a latching state with a desired timing accurately by the action | operation of a valve body control mechanism.
Further, since the valve body control mechanism is provided on the stationary member of the internal combustion engine, the operation of the valve body control mechanism can be stabilized.

以下に本発明の実施の形態を図面に基づいて説明する。
〔第1実施形態〕
図1〜図6は、自動車用エンジン(内燃機関の一例)に装備される本発明による弁開閉時期制御装置Aを示している。
Embodiments of the present invention will be described below with reference to the drawings.
[First Embodiment]
1 to 6 show a valve opening / closing timing control device A according to the present invention, which is installed in an automobile engine (an example of an internal combustion engine).

弁開閉時期制御装置Aは、図1に示すように、エンジンのクランクシャフト (図示せず)に対して同期回転する外部ロータ1(駆動側回転部材)と、外部ロータ1に対して同軸上に配置されて、エンジンの弁開閉用のカムシャフト3に同期回転する内部ロータ2(従動側回転部材)とを備えている。   As shown in FIG. 1, the valve timing control device A includes an external rotor 1 (drive side rotating member) that rotates synchronously with an engine crankshaft (not shown), and is coaxial with the external rotor 1. An internal rotor 2 (driven rotation member) that is disposed and rotates synchronously with the camshaft 3 for opening and closing the valve of the engine is provided.

外部ロータ1は、内部ロータ2を同芯上に内装する外形が円筒状のハウジング4の前後に、内部ロータ2を回転軸芯方向で前後から挟み込むフロントプレート5とリアプレート6とをボルト7で連結して、内部ロータ2に対して所定の角度範囲内で相対回転可能に外装されている。   The outer rotor 1 has a front plate 5 and a rear plate 6 that sandwich the inner rotor 2 from the front and rear in the direction of the axis of rotation with bolts 7 in front and rear of a housing 4 having a cylindrical outer shape on which the inner rotor 2 is arranged concentrically. The outer rotor 2 is connected so as to be rotatable relative to the inner rotor 2 within a predetermined angle range.

リアプレート6の外周にはタイミングスプロケット8を形成してある。
外部ロータ1は、タイミングスプロケット8とエンジンのクランクシャフトに取り付けられたギア(図示せず)とに亘って巻き掛けたタイミングチェーンやタイミングベルト等の無端の動力伝達部材9でクランクシャフトに対して同期回転される。
A timing sprocket 8 is formed on the outer periphery of the rear plate 6.
The external rotor 1 is synchronized with the crankshaft by an endless power transmission member 9 such as a timing chain or a timing belt wound around a timing sprocket 8 and a gear (not shown) attached to the crankshaft of the engine. It is rotated.

内部ロータ2は、エンジンの吸気弁又は排気弁の開閉を制御するカムシャフト3の先端部分に、同芯上に一体回転するように連結ボルト10で連結してある。
カムシャフト3は、エンジンのシリンダーヘッド(図示せず)に回転自在に組み付けられている。
連結ボルト10は、その頭部に、後述する油路形成部材11を同芯上に一体に備えている。
The internal rotor 2 is connected to a tip portion of a camshaft 3 that controls opening and closing of an intake valve or exhaust valve of the engine by a connecting bolt 10 so as to rotate integrally on the same core.
The camshaft 3 is rotatably assembled to a cylinder head (not shown) of the engine.
The connecting bolt 10 is integrally provided with an oil passage forming member 11 to be described later on the same core.

エンジンのクランクシャフトが回転駆動すると、動力伝達部材9を介してタイミングスプロケット8に回転動力が伝達され、外部ロータ1が図2に示す回転方向Sに回転駆動する。   When the crankshaft of the engine is rotationally driven, rotational power is transmitted to the timing sprocket 8 via the power transmission member 9, and the external rotor 1 is rotationally driven in the rotational direction S shown in FIG.

外部ロータ1の回転駆動に伴って内部ロータ2が回転方向Sに回転駆動してカムシャフト3が回転する。
そして、カムシャフト3に設けられたカムがエンジンの吸気弁又は排気弁を押し下げて開弁させる。
As the outer rotor 1 is driven to rotate, the inner rotor 2 is driven to rotate in the rotation direction S, and the camshaft 3 rotates.
A cam provided on the camshaft 3 pushes down the intake valve or exhaust valve of the engine to open it.

図2に示すように、外部ロータ1のハウジング4には、径方向内方に向けて突出する複数の突部12,13を回転方向に沿って互いに離間させて並設してある。
外部ロータ1の周方向で隣り合う突部12,13どうしの間には、外部ロータ1と内部ロータ2とフロントプレート5とリアプレート6とで囲まれた流体圧室14を形成してある。図示のものでは、四個の流体圧室14を備えている。
As shown in FIG. 2, the housing 4 of the outer rotor 1 is provided with a plurality of projecting portions 12 and 13 projecting radially inward and spaced apart from each other along the rotational direction.
A fluid pressure chamber 14 surrounded by the outer rotor 1, the inner rotor 2, the front plate 5, and the rear plate 6 is formed between the protrusions 12 and 13 adjacent in the circumferential direction of the outer rotor 1. In the illustrated example, four fluid pressure chambers 14 are provided.

内部ロータ2の外周部において各流体圧室14に対面する箇所にはベーン溝15が形成されている。
ベーン溝15には、流体圧室14を相対回転方向(図2における矢印S1又はS2方向)において進角室16と遅角室17とに仕切るベーン18を径方向に沿って摺動可能に装着してある。
A vane groove 15 is formed at a location facing each fluid pressure chamber 14 in the outer peripheral portion of the inner rotor 2.
A vane 18 that divides the fluid pressure chamber 14 into the advance chamber 16 and the retard chamber 17 in the relative rotation direction (the direction of the arrow S1 or S2 in FIG. 2) is slidably mounted in the vane groove 15 along the radial direction. It is.

このベーン18が本発明における「仕切部」に相当する。
図1に示すように、ベーン18はその内方側端部とベーン溝15の底面との間に装着してあるスプリング19により径方向外側に向けて付勢されている。
The vane 18 corresponds to a “partition portion” in the present invention.
As shown in FIG. 1, the vane 18 is urged outward in the radial direction by a spring 19 that is mounted between the inner end of the vane 18 and the bottom surface of the vane groove 15.

図1,図2,図6に示すように、流体圧室14の進角室16に作動油を供給・排出する進角流路20と、遅角室17に作動油を供給・排出する遅角流路21とが、カムシャフト3と内部ロータ2とに亘って形成されている。
進角流路20及び遅角流路21は油圧回路22に接続してある。
As shown in FIGS. 1, 2, and 6, the advance passage 20 that supplies and discharges hydraulic fluid to the advance chamber 16 of the fluid pressure chamber 14 and the delay that supplies and discharges hydraulic fluid to the retard chamber 17. An angular channel 21 is formed across the camshaft 3 and the internal rotor 2.
The advance channel 20 and the retard channel 21 are connected to a hydraulic circuit 22.

進角室16及び遅角室17の一方又は双方に対して、油圧回路22の操作で作動油を供給又は排出することにより、外部ロータ1と内部ロータ2との相対回転位相(以下、単に「相対回転位相」という)を、進角方向S1(ベーン18の外部ロータ1に対する変位方向が図2において矢印S1で示される方向)又は遅角方向S2(ベーン18の外部ロータ1に対する変位方向が図2において矢印S2で示される方向)へ変位させ、或いは、任意の位相で保持する付勢力を発生させる。   By supplying or discharging hydraulic fluid to one or both of the advance chamber 16 and the retard chamber 17 by operating the hydraulic circuit 22, the relative rotational phase between the external rotor 1 and the internal rotor 2 (hereinafter simply “ Relative rotational phase "), the advance direction S1 (the direction of displacement of the vane 18 with respect to the external rotor 1 is indicated by the arrow S1 in FIG. 2) or the retard direction S2 (the direction of displacement of the vane 18 with respect to the external rotor 1) 2 in the direction indicated by the arrow S2), or an urging force to be held at an arbitrary phase is generated.

この進角室16及び遅角室17に供給される作動油が本発明における「流体」に相当する。
なお、相対回転位相が変位可能な範囲は、流体圧室14内でベーン18が変位可能な範囲であり、最遅角位相(図2参照)と最進角位相(図6参照)との間の範囲に相当する。
The hydraulic fluid supplied to the advance chamber 16 and the retard chamber 17 corresponds to the “fluid” in the present invention.
The range in which the relative rotational phase can be displaced is a range in which the vane 18 can be displaced in the fluid pressure chamber 14, and is between the most retarded phase (see FIG. 2) and the most advanced angle phase (see FIG. 6). It corresponds to the range.

図1に示すように、外部ロータ1のフロントプレート5と内部ロータ2との間にトーションスプリング23を設けてある。
このトーションスプリング23の両端部を、内部ロータ2とフロントプレート5の夫々に形成した保持部により保持して、相対回転位相が進角方向S1に変位するように外部ロータ1及び内部ロータ2を常時付勢してある。
As shown in FIG. 1, a torsion spring 23 is provided between the front plate 5 of the outer rotor 1 and the inner rotor 2.
Both ends of the torsion spring 23 are held by holding portions formed on the inner rotor 2 and the front plate 5, respectively, so that the outer rotor 1 and the inner rotor 2 are always moved so that the relative rotational phase is displaced in the advance direction S1. Energized.

図2,図5,図6に示すように、進角室16又は遅角室17への作動油の供給状態に基づく板状のロック部材24の移動で、外部ロータ1と内部ロータ2とをエンジン始動用の所定の相対回転位相で互いに係止する係止状態と当該係止を解除した解除状態とに切り替え可能なロック機構25を備えている。   As shown in FIGS. 2, 5, and 6, the movement of the plate-like lock member 24 based on the supply state of the hydraulic oil to the advance chamber 16 or the retard chamber 17 causes the outer rotor 1 and the inner rotor 2 to move. A lock mechanism 25 is provided that can be switched between a locked state in which the engine is locked at a predetermined relative rotational phase for starting the engine and a released state in which the locked state is released.

ロック機構25は、ロック部材24の先端部が径方向から係脱自在に係入する係入溝26と、ロック部材24が、板面を回転軸芯方向に沿わせて、係入溝26に向けて出退自在に収容される収容部27と、ロック部材24が係入溝26に向けて突出するように付勢する付勢バネ(弾性材)28とを設けて構成してある。   The locking mechanism 25 includes an engaging groove 26 in which the distal end portion of the locking member 24 is detachably engaged from the radial direction, and the locking member 24 extends into the engaging groove 26 with the plate surface along the rotational axis direction. An accommodating portion 27 that is removably accommodated toward the end and an urging spring (elastic material) 28 that urges the locking member 24 so as to protrude toward the engaging groove 26 are provided.

係入溝26は内部ロータ2に形成してあり、収容部27は外部ロータ1の突部13に形成してあり、付勢バネ28は収容部27の底面とロック部材24の端部とに亘って装着してある。   The engaging groove 26 is formed in the inner rotor 2, the accommodating portion 27 is formed in the protrusion 13 of the outer rotor 1, and the urging spring 28 is formed on the bottom surface of the accommodating portion 27 and the end of the lock member 24. It is worn over.

収容部27と係入溝26は、外部ロータ1と内部ロータ2との相対回転位相がエンジン始動用の相対回転位相において、径方向に互いに対向するように設けられている。   The accommodating portion 27 and the engaging groove 26 are provided so that the relative rotational phase between the outer rotor 1 and the inner rotor 2 is opposed to each other in the radial direction in the relative rotational phase for starting the engine.

従って、外部ロータ1と内部ロータ2とがエンジン始動用の相対回転位相に変位しているときに、付勢バネ28の付勢力によりロック部材24が係入溝26に入り込むと、外部ロータ1と内部ロータ2とを互いに係止する係止状態に切り替えられる。   Therefore, when the outer rotor 1 and the inner rotor 2 are displaced in the relative rotation phase for starting the engine, if the lock member 24 enters the engagement groove 26 by the biasing force of the biasing spring 28, the outer rotor 1 and The state is switched to a locked state in which the inner rotor 2 is locked to each other.

進角室16又は遅角室17に供給される作動油を、ロック機構25を解除状態にする作動油として当該ロック機構25に供給する解除用流路29を設けてある。   A release passage 29 is provided for supplying the hydraulic oil supplied to the advance chamber 16 or the retard chamber 17 to the lock mechanism 25 as hydraulic oil for releasing the lock mechanism 25.

解除用流路29は、図2,図4,図5に示すように、進角室16の一つに連通するように内部ロータ2に形成された第1供給路30と、遅角室17の一つに連通するように内部ロータ2に形成された第2供給路31と、第1供給路30及び第2供給路31に連通するように油路形成部材11に形成された第3供給路32と、第3供給路32に連通するように内部ロータ2に形成された第4供給路33とで構成してある。   As shown in FIGS. 2, 4, and 5, the release passage 29 includes a first supply passage 30 formed in the inner rotor 2 so as to communicate with one of the advance chambers 16, and the retard chamber 17. A third supply path formed in the oil passage forming member 11 so as to communicate with the second supply path 31 formed in the internal rotor 2 and communicated with the first supply path 30 and the second supply path 31. A path 32 and a fourth supply path 33 formed in the internal rotor 2 so as to communicate with the third supply path 32 are configured.

第1供給路30は、ロック機構25を設けてある突部13を挟む一対の流体圧室14のうちの、一方の流体圧室14の進角室16と、図3にも示すように、内部ロータ2と連結ボルト10との対向周面間に形成した環状油路34とに亘って、内部ロータ2の端面に径方向に沿って形成してある連通溝30aを介して連通するように設けてある。
第1供給路30の連通溝30aに臨む開口端部に、作動油の進角室16への逆流を防止するボール式の一方向弁35を装着してある。
The first supply path 30 includes the advance chamber 16 of one of the fluid pressure chambers 14 of the pair of fluid pressure chambers 14 sandwiching the protrusion 13 provided with the lock mechanism 25, as shown in FIG. Over the annular oil passage 34 formed between the opposed peripheral surfaces of the inner rotor 2 and the connecting bolt 10, the end surface of the inner rotor 2 is communicated via a communication groove 30 a formed along the radial direction. It is provided.
A ball-type one-way valve 35 for preventing the backflow of hydraulic oil to the advance chamber 16 is attached to the opening end facing the communication groove 30a of the first supply path 30.

第2供給路31は、ロック機構25を設けてある突部13を挟む一対の流体圧室14のうちの、他方の流体圧室14の遅角室17と、環状油路34とに亘って、内部ロータ2の端面に沿って径方向に形成してある連通溝31aを介して連通するように設けてある。
第2供給路31の連通溝31aに臨む開口端部に、作動油の遅角室17への逆流を防止するボール式の一方向弁35を装着してある。
The second supply path 31 extends across the retardation chamber 17 of the other fluid pressure chamber 14 and the annular oil path 34 of the pair of fluid pressure chambers 14 sandwiching the protrusion 13 provided with the lock mechanism 25. Further, it is provided so as to communicate with each other via a communication groove 31a formed in the radial direction along the end face of the inner rotor 2.
A ball-type one-way valve 35 for preventing the backflow of hydraulic oil to the retard chamber 17 is attached to the opening end facing the communication groove 31a of the second supply path 31.

第3供給路32は、回転軸芯と同芯上に形成してある第1油路36と、図3にも示すように、第1油路36の一端側と環状油路34と連通する第2油路37と、第1油路36の他端側と油路形成部材11の外周面に環状に形成してある周溝38とに連通する第3油路39とを設けて構成してある。
第4供給路33は、周溝38と係入溝26とに亘って連通するように設けてある。
The third supply passage 32 communicates with the first oil passage 36 formed concentrically with the rotational axis, and with one end side of the first oil passage 36 and the annular oil passage 34 as shown in FIG. A second oil passage 37 and a third oil passage 39 communicating with the other end of the first oil passage 36 and a circumferential groove 38 formed in an annular shape on the outer peripheral surface of the oil passage forming member 11 are provided. It is.
The fourth supply path 33 is provided so as to communicate with the circumferential groove 38 and the engagement groove 26.

従って、第1供給路30と第2供給路31とを環状油路34において合流させて、進角室16又は遅角室17に供給される作動油を第3供給路32と周溝38と第4供給路33とを介して係入溝26に供給することにより、ロック部材24を付勢バネ28の付勢力に抗して収容部27に引退させて、ロック機構25を解除状態にすることができる。   Therefore, the first supply passage 30 and the second supply passage 31 are merged in the annular oil passage 34, and the hydraulic oil supplied to the advance chamber 16 or the retard chamber 17 is supplied to the third supply passage 32 and the circumferential groove 38. By supplying the engaging member 26 via the fourth supply path 33, the lock member 24 is retracted to the accommodating portion 27 against the urging force of the urging spring 28, and the lock mechanism 25 is released. be able to.

第1油路36と第3油路39とを接続する接続空間44は、第1油路36と同芯上に形成してある軸孔45にスリーブ46を嵌入して、軸孔45の円錐面状に形成してある底面47と、スリーブ46の円錐面状に形成してある端面48との間に設けてある。
第1油路36は、軸孔45の底面47に同芯上に開口しており、第3油路39は軸孔45の内周面に開口している。
The connection space 44 connecting the first oil passage 36 and the third oil passage 39 is formed by inserting a sleeve 46 into a shaft hole 45 formed concentrically with the first oil passage 36 so that the conical shape of the shaft hole 45 is reached. It is provided between a bottom surface 47 formed in a planar shape and an end surface 48 formed in a conical surface shape of the sleeve 46.
The first oil passage 36 opens concentrically to the bottom surface 47 of the shaft hole 45, and the third oil passage 39 opens to the inner peripheral surface of the shaft hole 45.

接続空間44には、解除用流路29を連通・遮断するための球形弁体40を内装してある。
球形弁体40を底面47に押し付けて解除用流路29を遮断し、その押し付けを解除することにより解除用流路29を連通させる軸状の操作部材41を備えた弁体制御機構42を、エンジンのシリンダーブロック等の静止部材43に設けてある。
The connection space 44 includes a spherical valve body 40 for communicating and blocking the release channel 29.
A valve body control mechanism 42 including a shaft-like operation member 41 that presses the spherical valve body 40 against the bottom surface 47 to block the release passage 29 and releases the press passage to communicate the release passage 29. It is provided on a stationary member 43 such as a cylinder block of an engine.

弁体制御機構42は操作部材41を出退させるソレノイドで構成してあり、操作部材41はスリーブ46に挿通してある。
スリーブ46の内径は、操作部材41の外周面との間に、接続空間44とトーションスプリング23の収容空間49とを連通する一連の隙間50が形成される大きさに設定してある。
The valve body control mechanism 42 is configured by a solenoid that moves the operation member 41 out and out, and the operation member 41 is inserted through the sleeve 46.
The inner diameter of the sleeve 46 is set such that a series of gaps 50 are formed between the outer circumferential surface of the operation member 41 and the connection space 44 and the accommodation space 49 of the torsion spring 23.

従って、図1に示すように、操作部材41の先端で球形弁体40を底面47に押し付けて解除用流路29を遮断している状態、つまり、作動油の係入溝26への供給を阻止している状態では、係入溝26内に既に供給されている作動油を、隙間50を通して収容空間49に排出して、係止状態に確実に切り替えることができる。   Therefore, as shown in FIG. 1, the spherical valve body 40 is pressed against the bottom surface 47 at the tip of the operation member 41 to block the release passage 29, that is, the hydraulic oil is supplied to the engaging groove 26. In the blocked state, the hydraulic oil already supplied into the engagement groove 26 can be discharged to the accommodation space 49 through the gap 50 and switched to the locked state with certainty.

また、図4,図5に示すように、球形弁体40の底面47への押し付けを解除して解除用流路29が連通している状態、つまり、作動油を係入溝26に供給している状態では、操作部材41の先端がスリーブ46の内側に引退して、球形弁体40が作動油の圧力でスリーブ46の端面48に押し付けられ、接続空間44と収容空間49との連通が阻止される。
よって、作動油を係入溝26に供給して解除状態に確実に切り替えることができる。
As shown in FIGS. 4 and 5, the pressure on the bottom surface 47 of the spherical valve body 40 is released and the release passage 29 is in communication, that is, hydraulic oil is supplied to the engagement groove 26. In this state, the distal end of the operation member 41 is retracted to the inside of the sleeve 46, the spherical valve body 40 is pressed against the end surface 48 of the sleeve 46 by the pressure of the hydraulic oil, and the communication between the connection space 44 and the accommodation space 49 is established. Be blocked.
Therefore, the hydraulic oil can be supplied to the engagement groove 26 and reliably switched to the released state.

〔第2実施形態〕
図7,図8,図9は、弁開閉時期制御装置Aの別実施形態を示し、内部ロータ2のフロントプレート5側に密着している端面51に連通長溝52を円弧状に形成してある(図9参照)。
[Second Embodiment]
7, 8, and 9 show another embodiment of the valve opening / closing timing control device A, and a communication long groove 52 is formed in an arc shape on an end surface 51 that is in close contact with the front plate 5 side of the internal rotor 2. (See FIG. 9).

第1供給路30と第2供給路31とを連通長溝52の底面に開口させ、連通長溝52と環状油路34とを連通する油路53を内部ロータ2に形成してある。
第1供給路30と第2供給路31の夫々に、作動油の逆流を防止するボール式の一方向弁35を装着してある。
The first supply passage 30 and the second supply passage 31 are opened at the bottom surface of the communication long groove 52, and an oil passage 53 that connects the communication long groove 52 and the annular oil passage 34 is formed in the internal rotor 2.
A ball-type one-way valve 35 for preventing backflow of hydraulic oil is attached to each of the first supply path 30 and the second supply path 31.

従って、進角室16又は遅角室17の作動油を、連通長溝52と油路53とを介して、環状油路34から第3供給路32に流入させて、ロック機構25を解除状態に切り替えることができる。
その他の構成は第1実施形態と同様である。
Accordingly, the hydraulic oil in the advance chamber 16 or the retard chamber 17 is caused to flow from the annular oil passage 34 to the third supply passage 32 via the communication long groove 52 and the oil passage 53, so that the lock mechanism 25 is released. Can be switched.
Other configurations are the same as those of the first embodiment.

〔第3実施形態〕
図10,図11は、弁開閉時期制御装置Aの別実施形態を示し、解除用流路29が、進角流路20のカムシャフト3における途中部分に直に連通された第1供給路30と、遅角流路21のカムシャフト3における途中部分に直に連通された第2供給路31とを合流して構成されている実施形態を示している。
[Third Embodiment]
10 and 11 show another embodiment of the valve opening / closing timing control device A, and the first supply passage 30 in which the release passage 29 is directly communicated with the intermediate portion of the camshaft 3 of the advance passage 20. And the 2nd supply path 31 directly connected to the middle part in the camshaft 3 of the retard flow path 21 and the embodiment comprised are shown.

第1供給路30と第2供給路31の夫々は、カムシャフト3の内部ロータ2に軸芯方向で対向する端面に形成した連通溝54を介して、環状油路34に連通されている。
第1供給路30と第2供給路31の夫々に、作動油の逆流を防止するボール式の一方向弁35を装着してある。
その他の構成は第1実施形態と同様である。
Each of the first supply path 30 and the second supply path 31 is communicated with the annular oil path 34 via a communication groove 54 formed on an end surface facing the inner rotor 2 of the camshaft 3 in the axial direction.
A ball-type one-way valve 35 for preventing backflow of hydraulic oil is attached to each of the first supply path 30 and the second supply path 31.
Other configurations are the same as those of the first embodiment.

〔第4実施形態〕
図12,図13は、解除用流路29が、進角流路20の内部ロータ2における途中部分に直に連通された第1供給路30と、遅角流路21の内部ロータ2における途中部分に直に連通された第2供給路31とを合流して構成されている実施形態を示している。
その他の構成は第1実施形態と同様である。
[Fourth Embodiment]
12 and 13, the release passage 29 is in the middle of the first supply passage 30 that is in direct communication with the middle portion of the advance passage 20 in the inner rotor 2, and in the middle of the retard passage 21 in the inner rotor 2. An embodiment is shown in which the second supply path 31 that is directly communicated with the part is joined.
Other configurations are the same as those of the first embodiment.

〔その他の実施形態〕
1.本発明による弁開閉時期制御装置は、流体圧室が駆動側回転部材と従動側回転部材の何れに形成されていても良い。
2.本発明による弁開閉時期制御装置は、仕切部が駆動側回転部材と従動側回転部材の何れに設けられていても良い。
[Other Embodiments]
1. In the valve opening / closing timing control device according to the present invention, the fluid pressure chamber may be formed in either the driving side rotating member or the driven side rotating member.
2. In the valve timing control apparatus according to the present invention, the partition portion may be provided on either the driving side rotating member or the driven side rotating member.

弁開閉時期制御装置の第1実施形態を示す縦断面図(図2のI−I線矢視断面図)Longitudinal sectional view showing the first embodiment of the valve opening / closing timing control device (sectional view taken along line I-I in FIG. 2) 図1のII−II線矢視断面図Sectional view taken along line II-II in FIG. 要部の斜視図Perspective view of main parts 図2のIV−IV線矢視断面図Sectional view taken along line IV-IV in FIG. 図2のV−V線矢視断面図2 is a cross-sectional view taken along line VV in FIG. 要部の横断面図Cross section of the main part 第2実施形態を示し、図9におけるVII−VII線矢視断面図FIG. 9 shows a second embodiment, and is a cross-sectional view taken along line VII-VII in FIG. 第2実施形態を示し、図9におけるVIII−VIII線矢視断面図Sectional view taken along the line VIII-VIII in FIG. 9 showing the second embodiment 第2実施形態を示す内部ロータの端面図End view of the internal rotor showing the second embodiment 第3実施形態を示し、図11のX−X線矢視断面図FIG. 11 is a sectional view taken along line XX in FIG. 11 showing the third embodiment. 第3実施形態を示し、図10のXI−XI線矢視断面図FIG. 10 is a cross-sectional view taken along line XI-XI in FIG. 第4実施形態を示す要部の横断面図Cross-sectional view of the main part showing the fourth embodiment 第4実施形態を示す要部の斜視図The perspective view of the principal part which shows 4th Embodiment

符号の説明Explanation of symbols

1 駆動側回転部材
2 従動側回転部材
3 カムシャフト
14 流体圧室
16 進角室
17 遅角室
18 仕切部
20 進角流路
21 遅角流路
25 ロック機構
29 解除用流路
30 第1供給路
31 第2供給路
35 一方向弁
40 弁体
41 操作部材
42 弁体制御機構
43 静止部材
DESCRIPTION OF SYMBOLS 1 Drive side rotating member 2 Driven side rotating member 3 Camshaft 14 Fluid pressure chamber 16 Advance chamber 17 Delay chamber 18 Partition 20 Advance channel 21 Delay channel 25 Lock mechanism 29 Release channel 30 First supply Path 31 Second supply path 35 One-way valve 40 Valve body 41 Operating member 42 Valve body control mechanism 43 Stationary member

Claims (2)

内燃機関のクランクシャフトに対して同期回転する駆動側回転部材と、
前記駆動側回転部材に対して同軸上に配置され、前記内燃機関の弁開閉用のカムシャフトに同期回転する従動側回転部材と、
前記駆動側回転部材及び前記従動側回転部材の何れか一方に形成された流体圧室と、
前記流体圧室を進角室と遅角室とに仕切るよう前記駆動側回転部材及び前記従動側回転部材の何れか他方に設けられた仕切部と、
前記従動側回転部材に形成され、前記進角室に流体を供給・排出する進角流路及び前記遅角室に流体を供給・排出する遅角流路と、
流体の供給状態に基づいて、前記駆動側回転部材および前記従動側回転部材を係止する係止状態と当該係止を解除した解除状態とに切り替え可能なロック機構とを備え、
前記進角室又は前記遅角室に供給される流体を、前記ロック機構を前記解除状態にする流体として当該ロック機構に供給する解除用流路を設けてあり、
前記解除用流路が、前記進角流路又は前記進角室に連通された第1供給路と、前記遅角流路又は前記遅角室に連通された第2供給路とを合流して構成してあり、前記第1供給路と前記第2供給路とに夫々一方向弁を設けてあり、
前記解除用流路に当該解除用流路を連通・遮断する弁体を設けてある弁開閉時期制御装置。
A drive-side rotating member that rotates synchronously with the crankshaft of the internal combustion engine;
A driven-side rotating member that is coaxially disposed with respect to the driving-side rotating member and rotates synchronously with a camshaft for opening and closing the valve of the internal combustion engine;
A fluid pressure chamber formed in any one of the driving side rotating member and the driven side rotating member;
A partition provided on the other of the driving side rotating member and the driven side rotating member to partition the fluid pressure chamber into an advance chamber and a retard chamber;
An advance flow path that is formed in the driven side rotation member and supplies / discharges fluid to / from the advance chamber, and a retard flow path that supplies / discharges fluid to the retard chamber;
A locking mechanism capable of switching between a locking state for locking the driving side rotating member and the driven side rotating member and a releasing state for releasing the locking based on a fluid supply state;
A release channel is provided for supplying the fluid supplied to the advance chamber or the retard chamber to the lock mechanism as a fluid for bringing the lock mechanism into the release state;
The release channel joins the first supply path communicated with the advance channel or the advance chamber and the second supply path communicated with the retard channel or the retard chamber. And a one-way valve is provided for each of the first supply path and the second supply path,
A valve opening / closing timing control device in which a valve body for communicating and blocking the release channel is provided in the release channel.
前記弁体に作用する操作部材を備えた弁体制御機構を前記内燃機関の静止部材に設けてある請求項1に記載の弁開閉時期制御装置。   The valve opening / closing timing control device according to claim 1, wherein a valve body control mechanism including an operation member acting on the valve body is provided in a stationary member of the internal combustion engine.
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JP6046518B2 (en) * 2013-02-15 2016-12-14 株式会社日本自動車部品総合研究所 Valve timing adjustment device
DE102013009752A1 (en) * 2013-06-11 2014-12-24 Daimler Ag Camshaft adjusting device
SE541128C2 (en) 2016-05-24 2019-04-16 Scania Cv Ab High frequency switching variable cam timing phaser
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JP3750936B2 (en) * 2002-04-25 2006-03-01 三菱電機株式会社 Valve timing control device for internal combustion engine
JP3763468B2 (en) * 2002-04-26 2006-04-05 三菱電機株式会社 Valve timing control device for internal combustion engine
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